dCBP-30
dCBP-30 is an orally active, selective and dual-acting CBP/p300 PROTAC degrader with DC50 values of 0.05 nM (CBP) and 0.04 nM (p300), respectively. dCBP-30 reduces the acetylation levels of histone substrates H3K27, H3K18, H2BK5 and H2BK20, downregulates multiple myeloma-specific dependency programs, and induces multiple myeloma cell apoptosis. dCBP-30 triggers tumor regression and prolongs survival in multiple myeloma xenograft mouse models, and exhibits synergistic antiproliferative activity with dexamethasone. dCBP-30 can be used for the research of multiple myeloma.
(Pink: CBP/p300 ligand (HY-138539); Blue: Cereblon ligand (HY-W093272); Black: linker).
For research use only. We do not sell to patients.
- Formula: C40H41F3N10O5
- Molecular Weight:798.81
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
All PROTACs Isoforms
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Biological Activity
Description
IC50 & Target
[1]|
CBP 0.05 nM (DC50) |
p300 0.04 nM (DC50) |
In Vitro
dCBP-30 (0.01-1000 nM; 1-24 h) potently degrades both CBP and p300 in HAP1 cells, with DC50 values of 0.05 nM (CBP) and 0.04 nM (p300) at 4 hours, and maximum degradation rates of 0.79 (CBP) and 0.81 (p300) at 1 nM after 1 hour[1].
dCBP-30 (10 nM; 4 h) selectively decreases only CBP and p300 protein levels in MM1.S multiple myeloma cells after 4 hours of 10 nM treatment[1].
dCBP-30 (10 nM; 0.5-24 h) potently reduces acetylation of CBP/p300 histone substrates (H3K18ac, H3K27ac, H2BK5ac, H2BK20ac) in MM1.S multiple myeloma cells after 10 nM treatment[1].
dCBP-30 potently inhibits viability across 25 multiple myeloma cell lines (median AUC0-t lower than dCBP-1, GNE-781, and A-485), induces complete cell killing in MM1.S cells at 10 nM within 72 hours, and triggers apoptosis in a time-dependent manner, with ~80% of cells apoptotic after 24 hours of 10 nM exposure[1].
dCBP-30 (10 nM; 2-24 h) treatment of MM1.S multiple myeloma cells at 10 nM rapidly downregulates critical myeloma dependency genes (MYC, IRF4, MAF, PRDM1, PIM2) within 2 hours, induces modest chromatin accessibility decreases at CBP/p300 binding sites, and alters transcription factor motif accessibility in a time-dependent manner, disrupting essential myeloma signaling nodes[1].
dCBP-30 (10 μM; 4 h) has significantly greater membrane permeability than dCBP-1 in a cell-free PAMPA assay at 10 μM, contributing to its enhanced in vitro degradation potency[1].
dCBP-30 (multiple doses; 48-120 h) acts synergistically with Dexamethasone (HY-14648) to reduce viability in MM1.S and NCI-H929 multiple myeloma cells, while showing antagonism with other standard anti-myeloma agents[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
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Cell Line:MM1.S multiple myeloma cells
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Concentration:10 nM
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Incubation Time:24 h; 0.5, 1, 2, 4, 24 h (time-course)
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Result:Led to pronounced decreases in acetylation of H3K18, H3K27, H2BK5, and H2BK20.
In Vivo
dCBP-30 (15 mg/kg; p.o.; twice daily; intermittent dosing regimen; combined with Dexamethasone (HY-14648) 1 mg/kg; i.p.; twice weekly) achieves comparable tumor regression efficacy to monotherapy with 30 mg/kg dCBP-30, with lower degrees of body weight loss and transient thrombocytopenia[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
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Animal Model:Female 4- to 5-week-old C57BL/6-Crbntm2.1Ble/J mice (humanized CRBN model)[1]
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Dosage:3 mg/kg; 30 mg/kg; 15 mg/kg (combined with dexamethasone 1 mg/kg)
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Administration:p.o.; twice daily; intermittent schedule; i.p. (Dexamethasone, twice weekly)
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Result:Induced tumor regression from baseline during the first two treatment cycles at 30 mg/kg.
Showed increased survival in 3 mg/kg and 30 mg/kg cohorts compared to vehicle controls.
Caused acute loss of CBP and p300 in xenograft tumors with maximal degradation observed at 6 hours post single 30 mg/kg oral dose.
Achieved similar tumor regression as 30 mg/kg dCBP-30 alone when combined with Dexamethasone at 15 mg/kg, with reduced weight loss and transient thrombocytopenia that normalized during treatment holidays.
Chemical Information
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Molecular Weight 798.81
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Formula C40H41F3N10O5
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SMILES
FC1=C(C=C2C(N(C(C2=C1)=O)C3CCC(NC3=O)=O)=O)N4CCC(CC4)N5N=C(C6=C5CCN(C6)C(NC)=O)N7CCCC8=C7C=C(C(C9=CN(N=C9)C)=C8)C(F)F
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Shipping
Room temperature in continental US; may vary elsewhere.
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Storage
Please store the product under the recommended conditions in the Certificate of Analysis.
Protocols
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Apoptosis
Apoptosis, also called programmed cell death, is generally characterized by distinct morphological characteristics.
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TUNEL staining for apoptotic DNA fragmentation
TUNEL staining detects DNA strand breaks by using terminal deoxynucleotidyl transferase to add labeled nucleotides to exposed 3′-OH DNA termini, generating either microscopic staining in fixed cells or tissue sections, or fluorescence/cytometric signal in cell suspensions. TUNEL positivity reflects DNA fragmentation but should not be interpreted alone as definitive apoptosis, because TUNEL can also label necrotic, autolytic, mechanically damaged, or DNA-repair-associated DNA breaks.
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Annexin V plus membrane-impermeant dye apoptosis staining
Annexin V-based apoptosis assays rely on the detection of phosphatidylserine (PS) externalization from the inner leaflet of the plasma membrane to the outer leaflet, an early biochemical hallmark of apoptosis. Fluorescently labeled Annexin V binds PS in a calcium-dependent manner, enabling identification of early apoptotic cells by flow cytometry or fluorescence microscopy. When combined with a membrane-impermeant DNA-binding dye (e. g. , propidium iodide), this approach allows discrimination between viable (Annexin V−/dye−), early apoptotic (Annexin V+/dye−), and late apoptotic or necrotic (Annexin V+/dye+) cell populations by assessing membrane integrity and PS exposure.
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Patient-Derived Xenograft (PDX)
Patient-derived xenograft (PDX) models are generated by engrafting primary human tumor tissue directly into immunodeficient mice, allowing in vivo propagation of patient tumor biology without initial in vitro adaptation. These models are used to preserve key histopathological and molecular characteristics of the original tumor and enable assessment of tumor growth dynamics and therapeutic response in a living organism. The biological readout is tumor engraftment and subsequent growth in the murine host, which reflects the ability of human tumor cells to survive, vascularize, and expand in an immunocompromised microenvironment.
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Apoptosis Solutions
Apoptosis is a regulated, generally non-lytic cell-death pathway that removes unwanted, damaged, infected, or abnormal cells through coordinated morphological changes, caspase activation, DNA fragmentation, and membrane remodeling. The intrinsic apoptosis pathway is controlled mainly by mitochondrial outer membrane permeabilization, BCL-2 family proteins, cytochrome c release, apoptosome formation, caspase-9 activation, and downstream executioner caspase-3/7 activation. The extrinsic apoptosis pathway is initiated by death receptors such as Fas, TNFR, and TRAIL receptors, which recruit adaptor proteins and activate caspase-8 before engaging executioner caspases or mitochondrial amplification through BID cleavage. Apoptosis is linked to many phenotypes, including cancer cell killing, tissue homeostasis, immune regulation, neurodegeneration, infection response, and treatment-induced cytotoxicity; unresolved questions include how apoptosis interacts with necroptosis, pyroptosis, ferroptos
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Splenic/Portal-Vein Liver Metastasis Xenograft
Splenic and portal-vein liver metastasis xenograft models deliver tumor cells into the portal circulation so that cells reach the liver first and form hepatic metastatic lesions; splenic injection uses the spleen as an access route to the portal system, while direct portal-vein injection introduces cells into the portal vein without requiring splenectomy. The assay detects liver colonization, intrahepatic tumor growth, tumor distribution, treatment response, survival, and liver-metastasis microenvironment changes; readouts include bioluminescence or fluorescence imaging, gross liver nodule counts, liver weight or tumor burden, histology, and survival.
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Subcutaneous Cell-Line-Derived Xenograft
Subcutaneous cell-line-derived xenograft (CDX) models are established by implanting cultured human cancer cell lines into immunodeficient mice, where the injected cells form localized tumors that can be monitored in vivo as a measure of tumorigenic potential, growth kinetics, and treatment response. These models are widely used in oncology research because they allow reproducible tumor formation and enable comparative assessment of tumor growth between different cell lines or genetic manipulations in a controlled in vivo microenvironment. Subcutaneous implantation of cancer cells in immunodeficient mice is a standard approach for evaluating tumor growth behavior and therapeutic response across multiple cancer types, including prostate, esophageal, pancreatic, and colon cancer models.
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Orthotopic Cell-Line Xenograft
Orthotopic cell-line xenograft models involve implantation of human cancer cell lines into the anatomically corresponding organ of immunodeficient mice to reproduce tumor growth within a native microenvironment, enabling more clinically relevant tumor behavior compared with subcutaneous models. These models are widely used because orthotopic placement better recapitulates tumor progression, including invasion and metastatic spread, which are often underrepresented in heterotopic implantation systems. Compared with conventional xenografts, orthotopic implantation is described as more technically complex but provides improved simulation of tumor-microenvironment interactions and metastatic behavior, making it particularly valuable for translational oncology research. Surgical orthotopic implantation approaches have been emphasized as enabling faithful reproduction of clinical cancer features, including metastasis and disease progression patterns that align with the tumor’s organ of origi
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Intraperitoneal/Peritoneal Dissemination Xenograft
Intraperitoneal (IP) or peritoneal dissemination xenograft models are based on the introduction of human cancer cells into the peritoneal cavity of immunodeficient mice, where they attach to peritoneal surfaces, form multicellular aggregates or spheroids, and progressively generate disseminated tumor nodules that mimic advanced peritoneal metastatic disease. These models are widely used to study ovarian cancer progression, tumor-microenvironment interactions, and intraperitoneal therapeutic responses, often incorporating bioluminescence or fluorescence imaging to longitudinally monitor tumor burden in vivo. The biological principle relies on the capacity of tumor cells such as SKOV3 or related ovarian carcinoma lines to survive in suspension, aggregate within ascites-like fluid, adhere to mesothelial surfaces, and invade peritoneal organs, thereby recapitulating human peritoneal carcinomatosis patterns observed in advanced disease.
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Cell Viability Determination by MTT Colorimetric Assay
The following protocol uses the MTT colorimetric assay as a classic literature-established method for assessing cell viability/metabolic activity in cultured mammalian cells. MTT[3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide] is reduced by metabolically active cells to a colored formazan product; the amount of formazan is quantified spectrophotometrically and provides an indirect measure of metabolically active viable cells. Importantly, MTT reduction reflects cellular oxidoreductase/metabolic activity rather than an absolute direct count of living cells, so changes in cellular metabolism can alter the signal independently of cell number.
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)